Exploring the Capability of Temperature-Only Analysis for Zonal Flow Quantification

Shaktim Dutta, Apoorva Kumar, Siddhartha Mishra
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引用次数: 2

Abstract

Temperature logs have been used to monitor producing wells since the early 1930s. Normally, analysis of the temperature log is viewed as secondary to that of the spinner flowmeter, which gives flow velocity directly, and temperature is conventionally used only as an indicator of fluid entry/exit with the production logging tool (PLT). The main disadvantage of the PLT is that if spinner flowmeter data are not good due to tool problems, then flow quantification is jeopardized. Additionally, in recent years, the cost of production logging has increased considerably because many wells are now drilled horizontally through the reservoir, and the PLTs must be conveyed on coiled tubing or well tractors, and, in some cases (subsea wells), even this may not be possible. Consequently, alternative technologies become viable if they can be used for flow quantification using just temperature data. This paper presents a new flow quantification model using temperature data acquired using production logging or a distributed temperature sensor (DTS) system. The model presented in this paper can handle multiple production zones with their zonal fluid properties as input to give corresponding zonal flow rates as output. The said model is applicable for single-phase oil and gas producer wells as well as water injection wells in both onshore and offshore environments. There are two modes of flow calculation for each answer product-steady state or transient. The model is integrated into easy-to-use software, and it has options for forward simulation as well as optimization. The forward simulation calculates temperature distribution along the wellbore for any given production profile, which is critical for model calibration for any reservoir. After the model has been validated for a reservoir, it can be used for zonal flow quantification using any temperature survey. The objective of the optimization option is to allow the user to fit the model output temperature curve to a selected temperature curve by means of a genetic fitting algorithm that will adjust one or two user-selected reservoir parameters, such as permeability, pressure, skin, gas-oil ratio (GOR), temperature, or water-cut, until a fit is achieved. The model has been extensively tested against synthetic, literature and field examples and good agreements have been obtained, confirming the robustness of this novel approach.
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探索仅温度分析在纬向流定量中的能力
自20世纪30年代初以来,温度测井就被用于监测生产井。通常,对温度测井的分析被认为是次于旋转流量计的分析,旋转流量计可以直接给出流速,而温度通常只被用作生产测井工具(PLT)的流体进出指标。PLT的主要缺点是,如果由于工具问题导致旋转流量计数据不佳,则会危及流量量化。此外,近年来,生产测井的成本大幅增加,因为现在许多井都是在油藏中水平钻井的,而且plt必须通过连续油管或井下拖拉机输送,在某些情况下(海底井),甚至不可能这样做。因此,如果替代技术可以仅使用温度数据进行流量量化,那么它们就变得可行。本文提出了一种利用生产测井或分布式温度传感器(DTS)系统获得的温度数据进行流量量化的新模型。该模型可以处理多个产层,以产层流体性质为输入,给出相应的产层流量作为输出。该模型适用于陆上和海上的单相油气生产井和注水井。每个应答产品的流量计算有两种模式——稳态或瞬态。该模型集成到易于使用的软件中,并具有正向仿真和优化选项。正演模拟计算任何给定生产剖面沿井筒的温度分布,这对于任何油藏的模型校准都是至关重要的。该模型在油藏中得到验证后,可用于任何温度测量的层间流动量化。优化选项的目标是允许用户通过遗传拟合算法将模型输出温度曲线拟合到选定的温度曲线上,该算法将调整一个或两个用户选择的油藏参数,如渗透率、压力、表皮、气油比(GOR)、温度或含水率,直到达到拟合。该模型已针对合成、文献和现场实例进行了广泛的测试,并获得了良好的一致性,证实了这种新方法的鲁棒性。
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